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用于丁醛吸附的核壳结构沸石-A@介孔二氧化硅复合材料的合成

Synthesis of core-shell structured zeolite-A@mesoporous silica composites for butyraldehyde adsorption.

作者信息

Yu Haijun, Lv Yingying, Ma Kuoyan, Wang Changguo, Xue Zhaoteng, Zhao Yujuan, Deng Yonghui, Dai Ya, Zhao Dongyuan

机构信息

Department of Chemistry, Laboratory of Advanced Materials, Fudan University, Shanghai 200433, PR China; Harmful components and tar reduction in cigarette, Sichuan Key laboratory, Chengdou 610066, PR China.

Department of Chemistry, Laboratory of Advanced Materials, Fudan University, Shanghai 200433, PR China.

出版信息

J Colloid Interface Sci. 2014 Aug 15;428:251-6. doi: 10.1016/j.jcis.2014.04.060. Epub 2014 May 4.

Abstract

A simple sol-gel process is followed to construct a thin layer of mesoporous silica shell core-shell structure on micrometer sized and nanometer sized zeolite A (micro-zeolite A@SiO2 and nano-zeolite A@SiO2 respectively). Further thickness of the silica shells has been tuned from 20 to 50 nm while the zeolite A particle size changes from nanometer to micrometer. Pores of the silica shells arranged orderly on the crystal-faces of zeolite-A cores. Typically, adsorption amount of the butyraldehyde towards these core-shell composite materials is investigated well and is verified to be almost double than that of the pristine zeolite A. Interestingly the nano-zeolite A core containing core-shell composite absorbs maximum butyraldehyde (314 mg/g) compared to the micro-zeolite A (266 mg/g), even if the mesoporous shell thickness of the nano-zeolite A@SiO2 composites is less (20 nm) than that of micro-zeolite A@SiO2 (50 nm). Both of these values are significantly larger than the pristine zeolite A (nano-zeolite A; 151 mg/g and micro-zeolite A; 146 mg/g).

摘要

采用一种简单的溶胶-凝胶工艺,在微米级和纳米级的A型沸石(分别为微A型沸石@SiO₂和纳米A型沸石@SiO₂)上构建一层介孔二氧化硅壳核壳结构的薄层。在A型沸石粒径从纳米级变为微米级的同时,二氧化硅壳的厚度进一步从20纳米调整到50纳米。二氧化硅壳的孔在A型沸石核的晶面上有序排列。通常,对这些核壳复合材料对丁醛的吸附量进行了充分研究,结果证实其吸附量几乎是原始A型沸石的两倍。有趣的是,与微A型沸石(266毫克/克)相比,含纳米A型沸石核的核壳复合材料吸附的丁醛最多(314毫克/克),即使纳米A型沸石@SiO₂复合材料的介孔壳厚度(20纳米)比微A型沸石@SiO₂(50纳米)小。这两个值都明显大于原始A型沸石(纳米A型沸石为151毫克/克,微A型沸石为146毫克/克)。

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